US10390245B2 - Enhanced measurements in a wireless communication system - Google Patents
Enhanced measurements in a wireless communication system Download PDFInfo
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- US10390245B2 US10390245B2 US14/883,653 US201514883653A US10390245B2 US 10390245 B2 US10390245 B2 US 10390245B2 US 201514883653 A US201514883653 A US 201514883653A US 10390245 B2 US10390245 B2 US 10390245B2
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/309—Measuring or estimating channel quality parameters
- H04B17/318—Received signal strength
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L43/00—Arrangements for monitoring or testing data switching networks
- H04L43/16—Threshold monitoring
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L47/00—Traffic control in data switching networks
- H04L47/10—Flow control; Congestion control
- H04L47/27—Evaluation or update of window size, e.g. using information derived from acknowledged [ACK] packets
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
- H04W16/14—Spectrum sharing arrangements between different networks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/309—Measuring or estimating channel quality parameters
- H04B17/336—Signal-to-interference ratio [SIR] or carrier-to-interference ratio [CIR]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/373—Predicting channel quality or other radio frequency [RF] parameters
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/382—Monitoring; Testing of propagation channels for resource allocation, admission control or handover
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signaling for the administration of the divided path
Definitions
- the subject matter disclosed herein relates generally to wireless communications and more particularly relates to enhanced measurements and filters in a wireless communication system.
- LAA facilitates an LTE system to use an unlicensed spectrum with assistance from a licensed carrier.
- LAA further aims to facilitate the fair coexistence with other technologies over the unlicensed spectrum and to satisfy various regulatory requirements in different countries and regions.
- LAA operations may depend heavily on the LBT procedure. For example, if a channel is occupied, an eNB cannot transmit on that channel.
- a carrier may have a significant amount of activity from other nodes (e.g., Wi-Fi, LAA, etc.) transmissions may be delayed.
- the delay of transmissions may apply to all transmissions including discovery signal transmissions, which are used for RRM measurements.
- the unpredictability of discovery signal transmissions may lead to various problems.
- RSRP measurements for LAA may be performed based on measurements of discovery signals.
- a UE is provided a DMTC configuration, from which the UE derives time windows during which it expects to detect a discovery signal transmission.
- transmissions of discovery signals may be subject to the LBT procedure.
- the DMTC window may be kept small to ensure that the UE power consumption for detecting and measuring the discovery signals remains manageable. If a discovery signal transmission is skipped or delayed, the UE physical layer may not provide a corresponding physical layer measurement to RRC.
- a delay or skip in discovery signal transmissions by an eNB implies a delay in RSRP measurement samples by a UE.
- the UE may perform layer 3 filtering of physical layer RSRP measurements.
- the layer 3 filtering in LTE assumes that a measurement sample is made available at least once every 200 milliseconds (“ms”). If a discovery signal is considerably delayed, channel conditions may have changed significantly by the time the discovery signal is actually transmitted. However, a history in a layer 3 filter may cause the convergence of the filtered measurements to the new channel conditions to be slow.
- RSRP measurements may not give a clear picture of activity on a carrier.
- a UE may find a carrier that has a desired LAA cell (e.g., belonging to desired PLMN) and measure a high RSRP for the cell.
- the UE may find a desired LAA cell and measure a moderate RSRP for the cell.
- the first cell would be chosen for LAA service.
- the throughput that can be achieved on the first cell may be lower than the throughput that can be achieved on the second cell.
- a carrier with low occupancy may be preferred.
- the apparatus includes a receiver that detects a reference signal during a first time window of a set of time windows during which reception of the reference signal is expected and detects the reference signal during a second time window of the set of time windows.
- the second time window occurs an offset time after the first time window.
- the apparatus includes a processor that determines a filter coefficient based on the offset time. In such embodiments, the filter coefficient is used to generate a filtered measurement.
- the offset time includes one or more time windows of the set of time windows during which the reference signal is not detected.
- the processor determines the filter coefficient by summing a predetermined filter coefficient and a parameter derived as a function of the offset time. In some embodiments, the processor determines the filter coefficient to be a first value if the offset time is less than a threshold time and to be a second value if the offset time is greater than or equal to the threshold time.
- a method for enhanced measurements and filters includes detecting, by use of a receiver, a reference signal during a first time window of a set of time windows during which reception of the reference signal is expected.
- the method may include detecting the reference signal during a second time window of the set of time windows.
- the second time window occurs an offset time after the first time window.
- the method includes determining a filter coefficient based on the offset time. In such embodiments, the filter coefficient is used to generate a filtered measurement.
- the offset time includes one or more time windows of the set of time windows during which the reference signal is not detected.
- determining the filter coefficient based on the offset time includes determining the filter coefficient by summing a predetermined filter coefficient and a parameter derived as a function of the offset time.
- determining the filter coefficient based on the offset time includes determining the filter coefficient to be a first value if the offset time is less than a threshold time and to be a second value if the offset time is greater than or equal to the threshold time.
- Another method for enhanced measurements and filters includes performing, by use of a processor, a first measurement at a first time.
- the method may include determining an offset time selected pseudo-randomly from a set of values.
- the method includes performing a second measurement at a second time, the second time being the offset time after the first time. In such embodiments, the second measurement is used for a carrier loading measurement.
- determining the offset time selected pseudo-randomly from the set of values includes determining the offset time based on at least one of a subframe index, a system frame number, a cell radio network temporary identifier (“C-RNTI”), a physical cell id, a virtual cell id, and a scrambling sequence initialization value. In some embodiments, determining the offset time selected pseudo-randomly from the set of values includes determining the offset time based on a modulo function with at least one of the following inputs: a subframe index, a system frame number, a cell radio network temporary identifier (“C-RNTI”), a physical cell id, a virtual cell id, and a scrambling sequence initialization value.
- C-RNTI cell radio network temporary identifier
- an apparatus includes a receiver that receives information.
- the apparatus may include a processor that performs a first measurement in a first set of subframes received by the receiver at a first time.
- the first set of subframes includes at least one subframe.
- the processor performs a second measurement in a second set of subframes received by the receiver at a second time.
- the second set of subframes includes at least one subframe.
- the second set of subframes is offset in time from the first set of subframes by an offset time, the offset time being determined using a pseudo-random function.
- the pseudo-random function determines the offset time based on at least one of a subframe index, a system frame number, a cell radio network temporary identifier (“C-RNTI”), a physical cell id, a virtual cell id, and a scrambling sequence initialization value.
- the first measurement is a reference signal received power (“RSRP”) measurement and the second measurement is a carrier loading measurement.
- RSRP reference signal received power
- the first measurement occurs in a discovery signal measurement timing configuration (“DMTC”) time window and the second measurement occurs outside of a DMTC time window.
- Another method for enhanced measurements and filters includes performing, by use of a processor, a first measurement in a first set of subframes at a first time.
- the first set of subframes includes at least one subframe.
- the method includes performing a second measurement in a second set of subframes at a second time.
- the second set of subframes includes at least one subframe.
- the second set of subframes is offset in time from the first set of subframes by an offset time, the offset time being determined using a pseudo-random function.
- the pseudo-random function determines the offset time based on at least one of a subframe index, a system frame number, a cell radio network temporary identifier (“C-RNTI”), a physical cell id, a virtual cell id, and a scrambling sequence initialization value.
- the first measurement is a reference signal received power (“RSRP”) measurement and the second measurement is a carrier loading measurement.
- RSRP reference signal received power
- the first measurement occurs in a discovery signal measurement timing configuration (“DMTC”) time window and the second measurement occurs outside of a DMTC time window.
- an apparatus includes a receiver that receives information corresponding to load measurements made by a device.
- the load measurements include a first measurement in a first set of subframes at a first time, wherein the first set of subframes include at least one subframe, a second measurement in a second set of subframes at a second time, wherein the second set of subframes include at least one subframe, and wherein the second set of subframes is offset in time from the first set of subframes by an offset time, the offset time being determined using a pseudo-random function.
- the apparatus includes a processor that determines carriers to be used based on the information.
- the first measurement is a reference signal received power (“RSRP”) measurement and the second measurement is a carrier loading measurement.
- RSRP reference signal received power
- the first measurement occurs in a discover signal measurement timing configuration (“DMTC”) time window and the second measurement occurs outside of a DMTC time window.
- DMTC discover signal measurement timing configuration
- a further method for enhanced measurements and filters includes receiving, by use of a receiver, information corresponding to load measurements made by a device.
- the load measurements include a first measurement in a first set of subframes at a first time, wherein the first set of subframes include at least one subframe, a second measurement in a second set of subframes at a second time, wherein the second set of subframes include at least one subframe, and wherein the second set of subframes is offset in time from the first set of subframes by an offset time, the offset time being determined using a pseudo-random function.
- the method includes determining carriers to be used based on the information.
- the first measurement is a reference signal received power (“RSRP”) measurement and the second measurement is a carrier loading measurement.
- RSRP reference signal received power
- the first measurement occurs in a discover signal measurement timing configuration (“DMTC”) time window and the second measurement occurs outside of a DMTC time window.
- DMTC discover signal measurement timing configuration
- Another method for enhanced measurements and filters includes receiving, by use of a receiver, a discovery signal measurement timing configuration (“DMTC”) from higher layer signaling.
- the method includes determining a set of periodic DMTC time windows from the received DMTC, wherein each periodic DMTC time window of the set of periodic DMTC time windows includes a set of contiguous subframes.
- the method includes determining a set of carrier loading measurement time windows, wherein each carrier loading measurement time window of the set of carrier loading measurement time windows includes a set of contiguous subframes.
- the method includes measuring carrier loading in at least one subframe in each carrier loading measurement time window of the set of carrier loading measurement time windows.
- each carrier loading measurement time window of the set of the carrier loading measurement time windows occur immediately adjacent in time to a respective periodic DMTC time window of the set of periodic DMTC time windows and each carrier loading measurement time window does not overlap its respective periodic DMTC time window.
- the method includes measuring at least one of reference signal received power (“RSRP”) and reference signal received quality (“RSRQ”) in at least one subframe of each periodic DMTC time window of the set of periodic DMTC time windows.
- RSRP reference signal received power
- RSRQ reference signal received quality
- each carrier loading measurement time window of the set of carrier loading measurement time windows is a periodic carrier loading measurement time window.
- a carrier loading measurement time window periodicity is a multiple of a DMTC time window periodicity.
- FIG. 1 is a schematic block diagram illustrating one embodiment of a wireless communication system for enhanced measurements and filters
- FIG. 2 is a schematic block diagram illustrating one embodiment of an apparatus that may be used for enhanced measurements and filters
- FIG. 3 is a schematic block diagram illustrating another embodiment of an apparatus that may be used for enhanced measurements and filters
- FIG. 4 illustrates a graph of one embodiment of layer 3 filtering
- FIG. 5 illustrates a graph of another embodiment of layer 3 filtering
- FIG. 6 illustrates a graph of a further embodiment of layer 3 filtering
- FIG. 7 illustrates a graph of various embodiments of measurement adaptations
- FIG. 8 is a schematic flow chart diagram illustrating one embodiment of a method for enhanced filtering
- FIG. 9 is a schematic flow chart diagram illustrating one embodiment of a method for enhanced measurements.
- FIG. 10 is a schematic flow chart diagram illustrating another embodiment of a method for enhanced measurements
- FIG. 11 is a schematic flow chart diagram illustrating one embodiment of a method for carrier determination.
- FIG. 12 is a schematic flow chart diagram illustrating a further embodiment of a method for enhanced measurements.
- embodiments may be embodied as a system, apparatus, method, or program product. Accordingly, embodiments may take the form of an entirely hardware embodiment, an entirely software embodiment (including firmware, resident software, micro-code, etc.) or an embodiment combining software and hardware aspects that may all generally be referred to herein as a “circuit,” “module” or “system.” Furthermore, embodiments may take the form of a program product embodied in one or more computer readable storage devices storing machine readable code, computer readable code, and/or program code, referred hereafter as code. The storage devices may be tangible, non-transitory, and/or non-transmission. The storage devices may not embody signals. In a certain embodiment, the storage devices only employ signals for accessing code.
- modules may be implemented as a hardware circuit comprising custom very-large-scale integration (“VLSI”) circuits or gate arrays, off-the-shelf semiconductors such as logic chips, transistors, or other discrete components.
- VLSI very-large-scale integration
- a module may also be implemented in programmable hardware devices such as field programmable gate arrays, programmable array logic, programmable logic devices or the like.
- Modules may also be implemented in code and/or software for execution by various types of processors.
- An identified module of code may, for instance, include one or more physical or logical blocks of executable code which may, for instance, be organized as an object, procedure, or function. Nevertheless, the executables of an identified module need not be physically located together, but may include disparate instructions stored in different locations which, when joined logically together, include the module and achieve the stated purpose for the module.
- a module of code may be a single instruction, or many instructions, and may even be distributed over several different code segments, among different programs, and across several memory devices.
- operational data may be identified and illustrated herein within modules, and may be embodied in any suitable form and organized within any suitable type of data structure. The operational data may be collected as a single data set, or may be distributed over different locations including over different computer readable storage devices.
- the software portions are stored on one or more computer readable storage devices.
- the computer readable medium may be a computer readable storage medium.
- the computer readable storage medium may be a storage device storing the code.
- the storage device may be, for example, but not limited to, an electronic, magnetic, optical, electromagnetic, infrared, holographic, micromechanical, or semiconductor system, apparatus, or device, or any suitable combination of the foregoing.
- a storage device More specific examples (a non-exhaustive list) of the storage device would include the following: an electrical connection having one or more wires, a portable computer diskette, a hard disk, a random access memory (“RAM”), a read-only memory (“ROM”), an erasable programmable read-only memory (“EPROM” or Flash memory), a portable compact disc read-only memory (“CD-ROM”), an optical storage device, a magnetic storage device, or any suitable combination of the foregoing.
- a computer readable storage medium may be any tangible medium that can contain, or store a program for use by or in connection with an instruction execution system, apparatus, or device.
- Code for carrying out operations for embodiments may be any number of lines and may be written in any combination of one or more programming languages including an object oriented programming language such as Python, Ruby, Java, Smalltalk, C++, or the like, and conventional procedural programming languages, such as the “C” programming language, or the like, and/or machine languages such as assembly languages.
- the code may execute entirely on the user's computer, partly on the user's computer, as a stand-alone software package, partly on the user's computer and partly on a remote computer or entirely on the remote computer or server.
- the remote computer may be connected to the user's computer through any type of network, including a local area network (“LAN”) or a wide area network (“WAN”), or the connection may be made to an external computer (for example, through the Internet using an Internet Service Provider).
- LAN local area network
- WAN wide area network
- Internet Service Provider an Internet Service Provider
- the code may also be stored in a storage device that can direct a computer, other programmable data processing apparatus, or other devices to function in a particular manner, such that the instructions stored in the storage device produce an article of manufacture including instructions which implement the function/act specified in the schematic flowchart diagrams and/or schematic block diagrams block or blocks.
- the code may also be loaded onto a computer, other programmable data processing apparatus, or other devices to cause a series of operational steps to be performed on the computer, other programmable apparatus or other devices to produce a computer implemented process such that the code which execute on the computer or other programmable apparatus provide processes for implementing the functions/acts specified in the flowchart and/or block diagram block or blocks.
- each block in the schematic flowchart diagrams and/or schematic block diagrams may represent a module, segment, or portion of code, which includes one or more executable instructions of the code for implementing the specified logical function(s).
- FIG. 1 depicts an embodiment of a wireless communication system 100 for enhanced measurements and filters.
- the wireless communication system 100 includes remote units 102 , base units 104 , and unlicensed carriers 106 . Even though a specific number of remote units 102 , base units 104 , and unlicensed carriers 106 are depicted in FIG. 1 , one of skill in the art will recognize that any number of remote units 102 , base units 104 , and unlicensed carriers 106 may be included in the wireless communication system 100 .
- the remote units 102 may include computing devices, such as desktop computers, laptop computers, personal digital assistants (“PDAs”), tablet computers, smart phones, smart televisions (e.g., televisions connected to the Internet), set-top boxes, game consoles, security systems (including security cameras), vehicle on-board computers, network devices (e.g., routers, switches, modems), or the like.
- the remote units 102 include wearable devices, such as smart watches, fitness bands, optical head-mounted displays, or the like.
- the remote units 102 may be referred to as subscriber units, mobiles, mobile stations, users, terminals, mobile terminals, fixed terminals, subscriber stations, UE, user terminals, a device, or by other terminology used in the art.
- the remote units 102 may communicate directly with one or more of the base units 104 via UL communication signals.
- the base units 104 may be distributed over a geographic region.
- a base unit 104 may also be referred to as an access point, an access terminal, a base, a base station, a Node-B, an eNB, a Home Node-B, a relay node, a device, or by any other terminology used in the art.
- the base units 104 are generally part of a radio access network that includes one or more controllers communicably coupled to one or more corresponding base units 104 .
- the radio access network is generally communicably coupled to one or more core networks, which may be coupled to other networks, like the Internet and public switched telephone networks, among other networks. These and other elements of radio access and core networks are not illustrated but are well known generally by those having ordinary skill in the art.
- the wireless communication system 100 is compliant with the LTE of the 3GPP protocol, wherein the base unit 104 transmits using an OFDM modulation scheme on the DL and the remote units 102 transmit on the UL using a SC-FDMA scheme. More generally, however, the wireless communication system 100 may implement some other open or proprietary communication protocol, for example, WiMAX, among other protocols. The present disclosure is not intended to be limited to the implementation of any particular wireless communication system architecture or protocol.
- the base units 104 may serve a number of remote units 102 within a serving area, for example, a cell or a cell sector via a wireless communication link.
- the base units 104 transmit DL communication signals to serve the remote units 102 in the time, frequency, and/or spatial domain.
- the unlicensed carriers 106 may be any suitable unlicensed carrier, such as a Wi-Fi access point (“AP”).
- the unlicensed carriers 106 may communicate with one or more of the remote units 102 .
- a remote unit 102 may detect a reference signal during a first time window of a set of time windows during which reception of the reference signal is expected and detect the reference signal during a second time window of the set of time windows.
- the second time window may occur an offset time after the first time window.
- the remote unit 102 may also determine a filter coefficient based on the offset time.
- the filter coefficient may be used to generate a filtered measurement. Accordingly, the filtered measurement may be more suitable for operation than in configurations that do not change the filter coefficient based on the offset time.
- a remote unit 102 may perform a first measurement at a first time.
- the remote unit 102 may determine an offset time selected pseudo-randomly from a set of values.
- pseudo-random may refer to something that appears random, but is not.
- pseudo-random sequences may exhibit statistical randomness but are generated by an entirely deterministic causal process.
- the remote unit 102 may perform a second measurement at a second time, the second time being the offset time after the first time. The second measurement may be used for a carrier loading measurement.
- a base unit 104 e.g., device
- FIG. 2 depicts one embodiment of an apparatus 200 that may be used for enhanced measurements and filters.
- the apparatus 200 includes one embodiment of the remote unit 102 .
- the remote unit 102 may include a processor 202 , a memory 204 , an input device 206 , a display 208 , a transmitter 210 , and a receiver 212 .
- the input device 206 and the display 208 are combined into a single device, such as a touchscreen.
- the remote unit 102 may not include any input device 206 and/or display 208 .
- the remote unit 102 may include one or more of the processor 202 , the memory 204 , the transmitter 210 , and the receiver 212 , and may not include the input device 206 and/or the display 208 .
- the processor 202 may include any known controller capable of executing computer-readable instructions and/or capable of performing logical operations.
- the processor 202 may be a microcontroller, a microprocessor, a central processing unit (“CPU”), a graphics processing unit (“GPU”), an auxiliary processing unit, a field programmable gate array (“FPGA”), or similar programmable controller.
- the processor 202 executes instructions stored in the memory 204 to perform the methods and routines described herein.
- the processor 202 is communicatively coupled to the memory 204 , the input device 206 , the display 208 , the transmitter 210 , and the receiver 212 .
- the processor 202 may determine a filter coefficient based on an offset time, wherein the filter coefficient is used to generate a filtered measurement. In some embodiments, the processor 202 may perform a first measurement in a first set of subframes received by a receiver at a first time and may perform a second measurement in a second set of subframes received by the receiver at a second time.
- the memory 204 in one embodiment, is a computer readable storage medium.
- the memory 204 includes volatile computer storage media.
- the memory 204 may include a RAM, including dynamic RAM (“DRAM”), synchronous dynamic RAM (“SDRAM”), and/or static RAM (“SRAM”).
- the memory 204 includes non-volatile computer storage media.
- the memory 204 may include a hard disk drive, a flash memory, or any other suitable non-volatile computer storage device.
- the memory 204 includes both volatile and non-volatile computer storage media.
- the memory 204 stores data relating to filter coefficients, configuration information, and so forth.
- the memory 204 also stores program code and related data, such as an operating system or other controller algorithms operating on the remote unit 102 .
- the input device 206 may include any known computer input device including a touch panel, a button, a keyboard, a stylus, a microphone, or the like.
- the input device 206 may be integrated with the display 208 , for example, as a touchscreen or similar touch-sensitive display.
- the input device 206 includes a touchscreen such that text may be input using a virtual keyboard displayed on the touchscreen and/or by handwriting on the touchscreen.
- the input device 206 includes two or more different devices, such as a keyboard and a touch panel.
- the display 208 may include any known electronically controllable display or display device.
- the display 208 may be designed to output visual, audible, and/or haptic signals.
- the display 208 includes an electronic display capable of outputting visual data to a user.
- the display 208 may include, but is not limited to, an LCD display, an LED display, an OLED display, a projector, or similar display device capable of outputting images, text, or the like to a user.
- the display 208 may include a wearable display such as a smart watch, smart glasses, a heads-up display, or the like.
- the display 208 may be a component of a smart phone, a personal digital assistant, a television, a table computer, a notebook (laptop) computer, a personal computer, a vehicle dashboard, or the like.
- the display 208 includes one or more speakers for producing sound.
- the display 208 may produce an audible alert or notification (e.g., a beep or chime).
- the display 208 includes one or more haptic devices for producing vibrations, motion, or other haptic feedback.
- all or portions of the display 208 may be integrated with the input device 206 .
- the input device 206 and display 208 may form a touchscreen or similar touch-sensitive display.
- the display 208 may be located near the input device 206 .
- the transmitter 210 is used to provide UL communication signals to the base unit 104 and the receiver 212 is used to receive DL communication signals from the base unit 104 .
- the transmitter 210 is used to transmit load information to the base unit 104 .
- the receiver 212 may be used to detect a reference signal and/or to receive information.
- the remote unit 102 may have any suitable number of transmitters 210 and receivers 212 .
- the transmitter 210 and the receiver 212 may be any suitable type of transmitters and receivers.
- the transmitter 210 and the receiver 212 may be part of a transceiver.
- FIG. 3 depicts another embodiment of an apparatus 300 that may be used for enhanced measurements and filters.
- the apparatus 300 includes one embodiment of the base unit 104 .
- the base unit 104 may include a processor 302 , a memory 304 , an input device 306 , a display 308 , a transmitter 310 , and a receiver 312 .
- the processor 302 , the memory 304 , the input device 306 , and the display 308 may be substantially similar to the processor 202 , the memory 204 , the input device 206 , and the display 208 of the remote unit 102 , respectively.
- the processor 302 may be used to determine carriers to be used based on information received from a remote unit 102 .
- the transmitter 310 is used to provide DL communication signals to the remote unit 102 and the receiver 312 is used to receive UL communication signals from the remote unit 102 .
- the receiver 312 is used to receive information corresponding to load measurements from one or more remote units 102 .
- the base unit 104 may have any suitable number of transmitters 310 and receivers 312 .
- the transmitter 310 and the receiver 312 may be any suitable type of transmitters and receivers.
- the transmitter 310 and the receiver 312 may be part of a transceiver.
- FIG. 4 illustrates a graph 400 of one embodiment of layer 3 filtering.
- RSRP 402 in the y-axis is illustrated over time 404 in the x-axis.
- a mean RSRP 406 and a filtered RSRP 408 are illustrated over time 404 .
- the physical layer if the physical layer measurement is not available (e.g., due to a discovery signal not having been transmitted), the physical layer does not provide the M n quantity mentioned above.
- an M n value is provided to the layer 3 filter.
- RSRP values may be generated as follows: durations between successive measurements may be generated randomly based on a Gaussian distribution with a mean of 200 ms and a standard deviation of 400 ms; a mean value of RSRP ⁇ 90 dbm is selected and RSRP measurements are generated as Gaussian random samples with the chosen mean and a standard deviation of 4 db; if the duration between the n-th measurement occasion and the n+1-th measurement occasion is more than a threshold value of 1000 ms, the mean value of RSRP is changed as follows: with probability 1 ⁇ 3 the mean value of RSRP stays the same; with probability 1 ⁇ 3 it increases by 8 db and with probability 1 ⁇ 3 it decreases by 8 db.
- the purpose of filtering may be to avoid reacting to spikes in measurements (e.g., such as sending a measurement report based on measurements being temporarily much higher or lower). Accordingly, the efficacy of a filter may be measured in terms of how quickly it converges to mean values.
- FIG. 5 illustrates a graph 500 of another embodiment of layer 3 filtering.
- RSRP 502 in the y-axis is illustrated over time 504 in the x-axis.
- a mean RSRP 506 and a filtered RSRP 508 are illustrated over time 504 .
- a threshold duration e.g. 1000 ms
- the threshold duration may be signaled to a UE from an eNB.
- a 1 ⁇ / ⁇ 2 ( k ⁇ / 4 )
- FIG. 5 illustrates the effect of using the simple forgetting filter on the same RSRP measurements used to produce FIG. 4 .
- a threshold duration of 1000 ms is used.
- the simple forgetting filter reacts quickly to measurements that have changed after a fairly long duration of absence of discovery signals.
- the filtered RSRP 508 may generate significant measurement spikes thereby resulting in excessive measurement reporting and handovers.
- FIG. 6 illustrates a graph 600 of a further embodiment of layer 3 filtering.
- RSRP 602 in the y-axis is illustrated over time 604 in the x-axis.
- a mean RSRP 606 and a filtered RSRP 608 are illustrated over time 604 .
- a ⁇ a ⁇ ⁇ 1 1 + e ( 1 - t T ) ; t is the time duration between M n and M n-1 ; T is a threshold duration (e.g. 1000 ms), which may be signaled to the UE;
- a 1 ⁇ / ⁇ 2 ( k / 4 ) ; and k is the filter coefficient for the corresponding measurement quantity.
- a 1 ⁇ / ⁇ 2 ( k ⁇ / 4 )
- a modified filter coefficient ⁇ tilde over (k) ⁇ k+4 log 2 (1+e (1-t/T) ), where k is the filter coefficient for the corresponding measurement quantity.
- FIG. 6 illustrates the effect of using the sigmoid forgetting filter on the same RSRP measurements used to produce FIG. 4 . It should be noted that a threshold duration of 1000 ms is used. As illustrated by the filtered RSRP 608 , the sigmoid forgetting filter may not generate significant measurement spikes thereby inhibiting excessive measurement reporting and handovers.
- a linear forgetting filter may be used.
- a ⁇ min ⁇ ( 1 , a ⁇ ⁇ max ⁇ ( t , T ) T ) ;
- t is the time duration between M n and M n-1 ;
- T is a threshold duration (e.g. 1000 ms), which may be signaled to the UE;
- a 1 ⁇ / ⁇ 2 ( k / 4 ) ; and k is the filter coefficient for the corresponding measurement quantity.
- FIG. 7 illustrates a graph 700 of various embodiments of measurement adaptations.
- probability (“P”)[x parameter ⁇ x value] 702 in the y-axis is illustrated over P[measurement when channel busy] 704 in the x-axis.
- P probability
- a P that a channel is busy when using periodic measurements 706 , uniformly distributed random measurements 708 , adaptive measurements 710 , and an actual P that a channel is busy 712 are illustrated.
- RSSI may be used to estimate a load on carriers.
- a UE may report RSSI measurements for one or more LAA carriers.
- a network e.g., eNB
- RSSI measurements may also be used to determine when to remove a carrier (due to excessive load from other nodes). Consequently, the measured RSSI may be used to capture a time-varying load on the carrier.
- the UE may perform measurements on discovery signals within periodically occurring DMTC time windows.
- a DMTC time window may be a time duration during which all discovery signals (e.g., from the serving and neighbor LAA eNBs) are expected to be transmitted. That is, for example, the UE may perform measurements (e.g., RSSI and so forth) every 40 ms, which are then averaged and/or filtered.
- the periodic measurement may not enable the UE to obtain measurements that are representative of the time-varying load on the carrier, such as because measuring RSSI during the DMTC time windows may result in an RSSI that indicates a load that is higher than the actual load on the carrier.
- RSSI measurements may not be performed during DMTC time windows.
- a UE may have gaps for performing measurements on “inter-frequency” LAA carriers—i.e., carriers without configured secondary cells. If the UE uses gaps to perform LAA-RSSI measurements, the network may configure specific subframes during which the LAA-RSSI measurements occur.
- LAA-RSSI measurements may be configured in addition to RSRP measurements for a carrier. Therefore, in order to reduce the number of times the UE switches between monitoring the DL and performing a measurement, LAA-RSSI measurements may occur immediately adjacent to the DMTC windows. As may be appreciated, this may provide a benefit of not having to explicitly configure the LAA-RSSI measurement gaps.
- LAA-RSSI measurement gaps may be used and may occur immediately before or immediately after RSRP measurement gaps.
- the measurement can occur when the carrier is busy (due to transmissions from either the serving LAA eNB or from another node) or when the channel is idle. Measurements may be considered to be representative of load on the channel, if the proportion of measurements that occur when the channel is busy is roughly the same as the proportion of time that the channel is busy.
- RSSI measurements may be considered to be representative of load on a channel if: P[Measurement occurs when Channel is Busy] ⁇ P[Channel is busy] ⁇ , for some small ⁇ .
- the UE may perform continuous measurements of the channel or perform measurements at random occasions.
- performing continuous measurements of a channel may consume a large amount of power; therefore, performing measurements at random occasions may be preferred because less power is consumed.
- each packet may be assumed to be 10 ms long.
- For transmission over the channel it may be assumed that the packet is transmitted in 1 ms blocks which are separated in time by 8 ms.
- Periodic and random measurements may be compared in such an example.
- the measurement periodicity may be 40 ms and the duration of the measurement may be 1 ms.
- the measurement duration may be 1 ms, and the duration between the start of the measurements may be a uniformly distributed random variable between 10 and 70 ms.
- the measurement parameters may be chosen such that the UE spends the substantially the same percentage of time on measurements in both approaches.
- FIG. 7 shows a CDF of the probability that measurement occurs when the channel is busy for periodic measurements 706 and uniformly distributed random measurements 708 , and the probability that the channel is busy 712 .
- uniformly distributed random measurements 708 provide some advantages over periodic measurements 706 . Specifically, the value of P[Measurement occurs when Channel is Busy] ⁇ P[Channel is busy] is smaller for the uniformly distributed random measurements 708 compared to that for the periodic measurements 706 .
- the probability that a channel is busy when using adaptive measurements 710 is also illustrated.
- occasions e.g., time windows
- the UE performs measurements are chosen randomly, as follows: 1) Two measurement periodicities are configured at the UE. The first is a “quiet channel periodicity” (e.g., quite channel inter-measurement duration) and the second is a “busy channel periodicity” (e.g., busy channel inter-measurement duration). The quiet channel periodicity is longer than the busy channel periodicity.
- the UE is also configured with separate measurement durations for busy and quiet periods.
- the UE is configured with a busyOverhang integer parameter; 2) During a measurement occasion, if the channel is determined to be busy, the UE uses the busy channel periodicity to determine an occasion in the future to perform the next measurement. For example, the next occasion may be determined based on an exponential distribution with a mean equal to the busy channel periodicity. Alternatively, the next occasion may be based on the current time plus the busy channel periodicity; and 3) If the channel is determined to be not busy, the UE starts a counter that is set to the value of the busyOverhang integer. The UE then selects the next measurement occasion based on the busy channel periodicity, as described above. At each measurement occasion, that follows: a) If the channel is not busy, the UE decrements the counter by 1.
- a quiet channel periodicity may be 200 ms and a busy channel periodicity may be 8 ms, while in other embodiments the quiet channel periodicity and the busy channel periodicity may be any suitable value.
- a measurement duration during quiet periods may be 6 ms and a measurement duration during busy periods may be 1 ms, while in other embodiments, the measurement durations may be any suitable values.
- FIG. 7 shows how the probability that measurement occurs when the channel is busy using adaptive measurements 710 may be closer to the probability that the channel is busy 712 than the probability that measurement occurs when the channel is busy for periodic measurements 706 and uniformly distributed random measurements 708 .
- RSSI may be defined as including the linear average of the total received power (in [W]) observed only in certain OFDM symbols of measurement subframes, in the measurement bandwidth over N number of resource blocks by the UE from all sources, including co-channel serving and non-serving cells, adjacent channel interference, thermal noise, etc.
- a new measurement quantity is defined that is not restricted to OFDM symbols of measurement subframes because, for example, there may not even be a reference symbol or signal transmission present when a UE performs such a measurement.
- the new measurement quantity may be referred to as LAA-RSSI, energy measurement, and/or a carrier loading measurement.
- a duration of an LAA-RSSI measurement may be less than or equal to five subframes.
- the duration of an LAA-RSSI measurement may be one or two subframes to reduce UE power consumption.
- the duration of the LAA-RSSI measurement may be set via RRC configuration.
- a location of an LAA-RSSI measurement may be in any suitable location.
- an LAA-RSSI measurement may be in any of the following locations: within DMTC occasions (e.g., time windows) of a UE; and in separate LAA-RSSI occasions, as explained in greater detail below.
- LAA-RSSI measurements may be performed within DMTC occasions of a UE.
- DMTC occasions are 6 ms long and may occur with a configurable periodicity (e.g., 10 ms, 20 ms, 40 ms, 80 ms, 160 ms, and so forth).
- UEs may measure RSRP and/or RSRQ after detecting discovery signals within a configured DMTC occasion.
- the UE may measure LAA-RSSI within each DMTC occasion, or within a subset of the DMTC occasions.
- DMTC periodicity may be configured to be 40 ms while LAA-RSSI measurement periodicity may be configured as 640 ms.
- a UE measures LAA-RSSI every 16th DMTC occasion.
- the exact subframes that the UE uses for LAA-RSSI measurement may be determined via higher layer configuration (e.g., a subframe offset related to LAA-RSSI measurement from the start of a DMTC occasion where LAA-RSSI is measured), via a UE autonomously picking the subframes from within the DMTC occasion, via a specification, and so forth.
- higher layer configuration may be configuration information received from messaging at the RRC layer, the MAC layer, or any other suitable layer.
- higher layer signaling may be messaging at the RRC layer, the MAC layer, or any other suitable layer.
- Taking LAA-RSSI measurements within DMTC occasions of a UE may be advantageous because a UE has to wake up during DMTC occasions for other measurements such as RSRP and RSRQ and performing LAA-RSSI measurements at the same time may result in relatively smaller additional power consumption for the UE.
- LAA-RSSI measurements may be performed in separate LAA-RSSI occasions.
- each LAA-RSSI occasion may be determined from one of the following: LAA-RSSI occasions may start immediately before or after each DMTC occasion or a subset of DMTC occasions configured for the UE; LAA-RSSI occasions may start immediately following L1 offset subframes after each DMTC occasion or a subset of DMTC occasions for the UE; and the UE may be configured via higher layers with an LAA-RSSI-periodicity and an LAA-RSSI offset, which are explained in greater detail below.
- LAA-RSSI occasions may start immediately before or after each DMTC occasion or a subset of DMTC occasions configured for the UE. More specifically, a UE may be configured via higher layers with the following parameters a DMTC-periodicity, a DMTC-offset, and optionally an LAA-RSSI-periodicity.
- DMTC occasions for the UE are subframes [0 to 5], [40 to 45], [80-85], and so forth. If the LAA-RSSI periodicity is also 40 ms, the LAA-RSSI occasions for the UE then start in subframes 6, 46, 86, and so forth. If the LAA-RSSI periodicity is 80 ms, the LAA-RSSI occasions for the UE then start in subframes 6, 86, and so forth.
- LAA-RSSI occasions may start immediately following L1 offset subframes after each DMTC occasion or a subset of DMTC occasions for the UE.
- L1 offset may be a pseudo-random offset generated by a UE with the following characteristics.
- P1 DMTC-periodicity minus the duration of a DMTC occasion.
- P1 DMTC-periodicity minus the duration of a DMTC occasion minus the duration of an LAA-RSSI occasion.
- the starting seed for the pseudo-random number generator generating the L1 offset may be a function of one or more of the following: the PCID of the serving cell to which the UE reports its LAA-RSSI measurement, C-RNTI of the UE, SFN of the corresponding DMTC occasion, and a parameter configured by higher layers (e.g., a DMRS scrambling sequence initialization value, a virtual cell ID, and so forth).
- a UE may be configured via higher layers with the following parameters: a DMTC-periodicity, a DMTC-offset, and optionally an LAA-RSSI-periodicity.
- a separate L1 offset is determined for each SFN and the seed for generating pseudo-random values of L1 offset is the UE's C-RNTI.
- the seed may instead be based on PCID, or other higher layer configured parameters.
- the UE may be configured via higher layers with an LAA-RSSI-periodicity and an LAA-RSSI offset.
- LAA-RSSI occasions may be determined from these parameters (e.g., they are independently configured from DMTC occasions).
- a UE may report the percent of time that the discovery signal was delayed as an indication of load.
- there may be independent filtering of two RSSI bins: one bin is above a threshold (e.g., an occupancy RSSI), and the other is below the threshold.
- the filtering may use shorter term averaging (e.g., first filter) for the first bin and longer term averaging (e.g., second filter) for the second bin.
- FIG. 8 is a schematic flow chart diagram illustrating one embodiment of a method 800 for enhanced filtering.
- the method 800 is performed by an apparatus, such as the remote unit 102 .
- the method 800 may be performed by a processor executing program code, for example, a microcontroller, a microprocessor, a CPU, a GPU, an auxiliary processing unit, a FPGA, or the like.
- the method 800 may include detecting 802 a reference signal during a first time window of a set of time windows during which reception of the reference signal is expected.
- the remote unit 102 e.g., the transmitter 210
- the method 800 may include detecting 804 the reference signal during a second time window of the set of time windows.
- the second time window occurs an offset time after the first time window.
- the remote unit 102 may detect 804 the reference signal during the second time window of the set of time windows.
- the offset time may include one or more time windows of the set of time windows during which the reference signal is not detected.
- the method 800 may also include determining 806 a filter coefficient based on the offset time, then the method 800 may end.
- the filter coefficient is used to generate a filtered measurement.
- the remote unit 102 may determine 806 the filter coefficient based on the offset time.
- determining 806 the filter coefficient based on the offset time includes determining the filter coefficient by summing a predetermined filter coefficient and a parameter derived as a function of the offset time.
- determining 806 the filter coefficient based on the offset time includes determining the filter coefficient to be a first value if the offset time is less than a threshold time and to be a second value if the offset time is greater than or equal to the threshold time.
- FIG. 9 is a schematic flow chart diagram illustrating one embodiment of a method 900 for enhanced measurements.
- the method 900 is performed by an apparatus, such as the remote unit 102 .
- the method 900 may be performed by a processor executing program code, for example, a microcontroller, a microprocessor, a CPU, a GPU, an auxiliary processing unit, a FPGA, or the like.
- the method 900 may include performing 902 a first measurement at a first time.
- a remote unit 102 may perform 902 the first measurement at the first time.
- the method 900 may also include determining 904 an offset time selected pseudo-randomly from a set of values.
- the remote unit 102 may determine 904 the offset time selected pseudo-randomly from the set of values.
- determining 904 the offset time selected pseudo-randomly from the set of values includes determining the offset time based on at least one of a subframe index, a system frame number, a C-RNTI, a physical cell id, a virtual cell id, and a scrambling sequence initialization value.
- determining 904 the offset time selected pseudo-randomly from the set of values includes determining the offset time based on a modulo function with at least one of the following inputs: a subframe index, a system frame number, a cell radio network temporary identifier (“C-RNTI”), a physical cell id, a virtual cell id, and a scrambling sequence initialization value.
- C-RNTI cell radio network temporary identifier
- the method 900 may include performing 906 a second measurement at a second time, the second time being the offset time after the first time.
- the second measurement is used for a carrier loading measurement.
- the method 900 may end.
- the remote unit 102 may perform 906 the second measurement at the second time.
- FIG. 10 is a schematic flow chart diagram illustrating another embodiment of a method 1000 for enhanced measurements.
- the method 1000 is performed by an apparatus, such as the remote unit 102 .
- the method 1000 may be performed by a processor executing program code, for example, a microcontroller, a microprocessor, a CPU, a GPU, an auxiliary processing unit, a FPGA, or the like.
- the method 1000 may include performing 1002 a first measurement in a first set of subframes at a first time.
- the first set of subframes includes at least one subframe.
- a remote unit 102 may perform 1002 the first measurement in the first set of subframes at the first time.
- the method 1000 may also include performing 1004 a second measurement in a second set of subframes at a second time, then the method 1000 may end.
- the second set of subframes includes at least one subframe.
- the remote unit 102 may perform 1004 the second measurement in the second set of subframes at the second time.
- the second set of subframes is offset in time from the first set of subframes by an offset time.
- the offset time is determined using a pseudo-random function.
- the pseudo-random function determines the offset time based on at least one of a subframe index, a system frame number, a cell radio network temporary identifier (“C-RNTI”), a physical cell id, a virtual cell id, and a scrambling sequence initialization value.
- the first measurement is an RSRP measurement and the second measurement is a carrier loading measurement.
- the first measurement occurs in a DMTC time window and the second measurement occurs outside of a DMTC time window.
- FIG. 11 is a schematic flow chart diagram illustrating one embodiment of a method 1100 for carrier determination.
- the method 1100 is performed by an apparatus, such as the base unit 104 .
- the method 1100 may be performed by a processor executing program code, for example, a microcontroller, a microprocessor, a CPU, a GPU, an auxiliary processing unit, a FPGA, or the like.
- the method 1100 may include receiving 1102 information corresponding to load measurements made by a device (e.g., the remote unit 102 ).
- the load measurements may include a first measurement in a first set of subframes at a first time.
- the first set of subframes includes at least one subframe.
- the load measurements may also include a second measurement in a second set of subframes at a second time.
- the second set of subframes includes at least one subframe.
- the second set of subframes is offset in time from the first set of subframes by an offset time.
- the offset time is determined using a pseudo-random function.
- a base unit 104 may receive 1102 the information corresponding to the load measurements.
- the method 1100 may also include determining 1104 carriers to be used based on the information, then the method 1100 may end.
- the base unit 104 may determine 1104 the carriers to be used based on the information.
- the first measurement is an RSRP measurement and the second measurement is a carrier loading measurement.
- the first measurement occurs in a DMTC time window and the second measurement occurs outside of a DMTC time window.
- FIG. 12 is a schematic flow chart diagram illustrating a further embodiment of a method 1200 for enhanced measurements.
- the method 1200 is performed by an apparatus, such as the remote unit 102 .
- the method 1200 may be performed by a processor executing program code, for example, a microcontroller, a microprocessor, a CPU, a GPU, an auxiliary processing unit, a FPGA, or the like.
- the method 1200 may include receiving 1202 a DMTC from higher layer signaling.
- a remote unit 102 may receive 1202 the DMTC from higher layer signaling.
- the method 1200 may also include determining 1204 a set of periodic DMTC time windows from the received DMTC. Each periodic DMTC time window of the set of periodic DMTC time windows includes a set of contiguous subframes.
- the remote unit 102 may determine 1204 the set of periodic DMTC time windows from the received DMTC.
- the method 1200 may include determining 1206 a set of carrier loading measurement time windows.
- Each carrier loading measurement time window of the set of carrier loading measurement time windows includes a set of contiguous subframes.
- the remote unit 102 may determine 1206 the set of carrier loading measurement time windows.
- the method 1200 may include measuring 1208 carrier loading in at least one subframe in each carrier loading measurement time window of the set of carrier loading measurement time windows. Then the method 1200 may end.
- the remote unit 102 may measure 1208 carrier loading in at least one subframe in each carrier loading measurement time window of the set of carrier loading measurement time windows.
- Each carrier loading measurement time window of the set of the carrier loading measurement time windows occurs immediately adjacent in time to a respective periodic DMTC time window of the set of periodic DMTC time windows and each carrier loading measurement time window does not overlap its respective periodic DMTC time window.
- the method includes measuring at least one of reference signal received power (“RSRP”) and reference signal received quality (“RSRQ”) in at least one subframe of each periodic DMTC time window of the set of periodic DMTC time windows.
- RSRP reference signal received power
- RSRQ reference signal received quality
- each carrier loading measurement time window of the set of carrier loading measurement time windows is a periodic carrier loading measurement time window.
- a carrier loading measurement time window periodicity is a multiple of a DMTC time window periodicity.
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Abstract
Description
where k 15 is the filter coefficient for the corresponding measurement quantity.
and k is the filter coefficient for the corresponding measurement quantity. As may be appreciated, the threshold duration may be signaled to a UE from an eNB. In some embodiments, {tilde over (α)}=α if the time duration between Mn and Mn-1 is less than or equal to a threshold duration (e.g. 1000 ms), and {tilde over (α)}=1 otherwise (e.g., if the time duration between Mn and Mn-1 is greater than a threshold duration).
and a modified filter coefficient {tilde over (k)}=k if the time duration between Mn and Mn-1 is less than the threshold duration, and k=0 otherwise (e.g., if the time duration between Mn and Mn-1 is greater than or equal to a threshold duration), where k is the filter coefficient for the corresponding measurement quantity. In some embodiments, {tilde over (k)}=k if the time duration between Mn and Mn-1 is less than or equal to the threshold duration, and {tilde over (k)}=0 otherwise (e.g., if the time duration between Mn and Mn-1 is greater than a threshold duration), where k is the filter coefficient for the corresponding measurement quantity.
t is the time duration between Mn and Mn-1; T is a threshold duration (e.g. 1000 ms), which may be signaled to the UE;
and k is the filter coefficient for the corresponding measurement quantity.
and a modified filter coefficient {tilde over (k)}=k+4 log2(1+e(1-t/T)), where k is the filter coefficient for the corresponding measurement quantity.
t is the time duration between Mn and Mn-1; T is a threshold duration (e.g. 1000 ms), which may be signaled to the UE;
and k is the filter coefficient for the corresponding measurement quantity.
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